TY - JOUR
T1 - Fourier and Inverse Fourier Transform Model for Delayed Self-interferometry System
AU - Zhang, Ling
AU - Xie, Weilin
AU - Feng, Yuxiang
AU - Liu, Zhangweiyi
AU - Zhou, Haijun
AU - Meng, Yinxia
AU - Bai, Yuanshuo
AU - Wei, Wei
AU - Dong, Yi
N1 - Publisher Copyright:
© 2009-2012 IEEE.
PY - 2020/6
Y1 - 2020/6
N2 - Understanding the effects of laser phase and frequency noise on laser interferometry is significant for evaluating the system performance. To precisely study the performance limit caused by laser frequency noise, here we propose and demonstrate a versatile model based on the Fourier and inverse Fourier transform (FIFT) method. This model, capable of estimating the beat note spectra of different delayed self-interferometry (DSI) with laser sources of arbitrary frequency noise properties, allows for accurate evaluations of the noise performance in a variety of interferometry based systems. Such a model has been experimentally validated using lasers with irregular frequency noise properties such as cavity stabilized fiber laser or laser under optical phase-locking, providing more detailed insight into the evolution of the frequency noise dynamics at different interferometric conditions. With average estimation goodness (AEG) of 0.9716 and computation complexity of mathcal {O}(Ntext {log}N), this model offers greater accuracy and lower complexity than conventional methods. It has also been confirmed that this model permits to distinguish the contributions from the laser frequency stability and other noise sources, which could be helpful for the noise analysis and performance optimization of the system.
AB - Understanding the effects of laser phase and frequency noise on laser interferometry is significant for evaluating the system performance. To precisely study the performance limit caused by laser frequency noise, here we propose and demonstrate a versatile model based on the Fourier and inverse Fourier transform (FIFT) method. This model, capable of estimating the beat note spectra of different delayed self-interferometry (DSI) with laser sources of arbitrary frequency noise properties, allows for accurate evaluations of the noise performance in a variety of interferometry based systems. Such a model has been experimentally validated using lasers with irregular frequency noise properties such as cavity stabilized fiber laser or laser under optical phase-locking, providing more detailed insight into the evolution of the frequency noise dynamics at different interferometric conditions. With average estimation goodness (AEG) of 0.9716 and computation complexity of mathcal {O}(Ntext {log}N), this model offers greater accuracy and lower complexity than conventional methods. It has also been confirmed that this model permits to distinguish the contributions from the laser frequency stability and other noise sources, which could be helpful for the noise analysis and performance optimization of the system.
KW - Optical interferometry
KW - laser frequency noise
KW - optoelectronic phase-locked loop
UR - http://www.scopus.com/inward/record.url?scp=85087414442&partnerID=8YFLogxK
U2 - 10.1109/JPHOT.2020.2997248
DO - 10.1109/JPHOT.2020.2997248
M3 - Article
AN - SCOPUS:85087414442
SN - 1943-0655
VL - 12
JO - IEEE Photonics Journal
JF - IEEE Photonics Journal
IS - 3
M1 - 9099422
ER -